Geochemistry of hydrothermal fluids from the eastern sector of the Sabatini Volcanic District (central Italy).

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Title: Geochemistry of hydrothermal fluids from the eastern sector of the Sabatini Volcanic District (central Italy).
Authors: Cinti, D.1 daniele.cinti@ingv.it, Tassi, F.2,3, Procesi, M.1, Brusca, L.4, Cabassi, J.2,3, Capecchiacci, F.2,3, Delgado Huertas, A.5, Galli, G.1, Grassa, F.4, Vaselli, O.2,3, Voltattorni, N.1
Source: Applied Geochemistry. Sep2017, Vol. 84, p187-201. 15p.
Subjects: Geochemistry, Permeability, Gas phase reactions, pH effect, Carbonation (Chemistry), Pliocene-Pleistocene boundary
Abstract: This study reports a complete geochemical dataset of 215 water and 9 gas samples collected in 2015 from thermal and cold discharges located in the eastern sector of the Sabatini Volcanic District (SVD), Italy. Based on these data, two main aquifers were recognized, as follows: 1) a cold Ca-HCO 3 to Ca(Na)-HCO 3 aquifer related to a shallow circuit within Pliocene-Pleistocene volcanic and sedimentary formations and 2) a deep CO 2 -pressurized aquifer hosted in Mesozoic carbonate-evaporitic rocks characterized by a Ca-HCO 3 (SO 4 ) to Na(Ca)-HCO 3 (Cl) composition. A thick sequence of low-permeability formations represents a physical barrier between the two reservoirs. Interaction of the CO 2 -rich gas phase with the shallow aquifer, locally producing high-TDS and low-pH cold waters, is controlled by fractures and faults related to buried horst-graben structures. The δ 18 O-H 2 O and δD-H 2 O values indicate meteoric water as the main source for both the shallow and deep reservoirs. Carbon dioxide, which is characterized by δ 13 C-CO 2 values ranging from −4.7 to +1.0‰ V-PDB, is mostly produced by thermo-metamorphic decarbonation involving Mesozoic rock formations, masking possible CO 2 contribution from mantle degassing. The relatively low R/R a values (0.07–1.04) indicate dominant crustal He, with a minor mantle He contribution. The CO 2 / 3 He ratios, up to 6 × 10 12 , support a dominant crustal source for these two gases. The δ 34 S-H 2 S values (from +9.3 to +11.3‰ V-CDT) suggests that H 2 S is mainly related to thermogenic reduction of Triassic anhydrites. The δ 13 C-CH 4 and δD-CH 4 values (from −33.4 to −24.9‰ V-PDB and from −168 to −140‰ V-SMOW, respectively) and the relatively low C 1 /C 2+ ratios (<100) are indicative of a prevailing CH 4 production through thermogenic degradation of organic matter. The low N 2 /Ar and high N 2 /He ratios, as well as the 40 Ar/ 36 Ar ratios (<305) close to atmospheric ratio, suggest that both N 2 and Ar mostly derive from air. Notwithstanding, the positive δ 15 N-N 2 values (from +0.91 to +3.7‰ NBS air) point to a significant extra-atmospheric N 2 contribution. Gas geothermometry in the CH 4 -CO 2 -H 2 and H 2 S-CO 2 -H 2 systems indicate equilibrium temperatures <200 °C, i.e. lower than those measured in deep geothermal wells (∼300 °C), due to either an incomplete attainment of the chemical equilibria or secondary processes (dilution and/or scrubbing) affecting the chemistry of the uprising fluids. Although the highly saline Na-Cl fluids discharged from the explorative geothermal wells in the study area support the occurrence of a well-developed hydrothermal reservoir suitable for direct exploitation, the chemistry of the fluid discharges highlights that the uprising hydrothermal fluids are efficiently cooled and diluted by the meteoric water recharge from the nearby Apennine sedimentary belt. This explains the different chemical and isotopic features shown by the fluids from the eastern and western sectors of SVD, respectively, the latter being influenced by this process at a lesser extent. Direct uses may be considered a valid alternative for the exploitation of this resource. [ABSTRACT FROM AUTHOR]
Copyright of Applied Geochemistry is the property of Pergamon Press - An Imprint of Elsevier Science and its content may not be copied or emailed to multiple sites without the copyright holder's express written permission. Additionally, content may not be used with any artificial intelligence tools or machine learning technologies. However, users may print, download, or email articles for individual use. This abstract may be abridged. No warranty is given about the accuracy of the copy. Users should refer to the original published version of the material for the full abstract. (Copyright applies to all Abstracts.)
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  Data: Geochemistry of hydrothermal fluids from the eastern sector of the Sabatini Volcanic District (central Italy).
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  Data: &lt;searchLink fieldCode=&quot;AR&quot; term=&quot;%22Cinti%2C+D%2E%22&quot;&gt;Cinti, D.&lt;/searchLink&gt;&lt;relatesTo&gt;1&lt;/relatesTo&gt;&lt;i&gt; daniele.cinti@ingv.it&lt;/i&gt;&lt;br /&gt;&lt;searchLink fieldCode=&quot;AR&quot; term=&quot;%22Tassi%2C+F%2E%22&quot;&gt;Tassi, F.&lt;/searchLink&gt;&lt;relatesTo&gt;2,3&lt;/relatesTo&gt;&lt;br /&gt;&lt;searchLink fieldCode=&quot;AR&quot; term=&quot;%22Procesi%2C+M%2E%22&quot;&gt;Procesi, M.&lt;/searchLink&gt;&lt;relatesTo&gt;1&lt;/relatesTo&gt;&lt;br /&gt;&lt;searchLink fieldCode=&quot;AR&quot; term=&quot;%22Brusca%2C+L%2E%22&quot;&gt;Brusca, L.&lt;/searchLink&gt;&lt;relatesTo&gt;4&lt;/relatesTo&gt;&lt;br /&gt;&lt;searchLink fieldCode=&quot;AR&quot; term=&quot;%22Cabassi%2C+J%2E%22&quot;&gt;Cabassi, J.&lt;/searchLink&gt;&lt;relatesTo&gt;2,3&lt;/relatesTo&gt;&lt;br /&gt;&lt;searchLink fieldCode=&quot;AR&quot; term=&quot;%22Capecchiacci%2C+F%2E%22&quot;&gt;Capecchiacci, F.&lt;/searchLink&gt;&lt;relatesTo&gt;2,3&lt;/relatesTo&gt;&lt;br /&gt;&lt;searchLink fieldCode=&quot;AR&quot; term=&quot;%22Delgado+Huertas%2C+A%2E%22&quot;&gt;Delgado Huertas, A.&lt;/searchLink&gt;&lt;relatesTo&gt;5&lt;/relatesTo&gt;&lt;br /&gt;&lt;searchLink fieldCode=&quot;AR&quot; term=&quot;%22Galli%2C+G%2E%22&quot;&gt;Galli, G.&lt;/searchLink&gt;&lt;relatesTo&gt;1&lt;/relatesTo&gt;&lt;br /&gt;&lt;searchLink fieldCode=&quot;AR&quot; term=&quot;%22Grassa%2C+F%2E%22&quot;&gt;Grassa, F.&lt;/searchLink&gt;&lt;relatesTo&gt;4&lt;/relatesTo&gt;&lt;br /&gt;&lt;searchLink fieldCode=&quot;AR&quot; term=&quot;%22Vaselli%2C+O%2E%22&quot;&gt;Vaselli, O.&lt;/searchLink&gt;&lt;relatesTo&gt;2,3&lt;/relatesTo&gt;&lt;br /&gt;&lt;searchLink fieldCode=&quot;AR&quot; term=&quot;%22Voltattorni%2C+N%2E%22&quot;&gt;Voltattorni, N.&lt;/searchLink&gt;&lt;relatesTo&gt;1&lt;/relatesTo&gt;
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  Data: &lt;searchLink fieldCode=&quot;JN&quot; term=&quot;%22Applied+Geochemistry%22&quot;&gt;Applied Geochemistry&lt;/searchLink&gt;. Sep2017, Vol. 84, p187-201. 15p.
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  Label: Abstract
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  Data: This study reports a complete geochemical dataset of 215 water and 9 gas samples collected in 2015 from thermal and cold discharges located in the eastern sector of the Sabatini Volcanic District (SVD), Italy. Based on these data, two main aquifers were recognized, as follows: 1) a cold Ca-HCO 3 to Ca(Na)-HCO 3 aquifer related to a shallow circuit within Pliocene-Pleistocene volcanic and sedimentary formations and 2) a deep CO 2 -pressurized aquifer hosted in Mesozoic carbonate-evaporitic rocks characterized by a Ca-HCO 3 (SO 4 ) to Na(Ca)-HCO 3 (Cl) composition. A thick sequence of low-permeability formations represents a physical barrier between the two reservoirs. Interaction of the CO 2 -rich gas phase with the shallow aquifer, locally producing high-TDS and low-pH cold waters, is controlled by fractures and faults related to buried horst-graben structures. The δ 18 O-H 2 O and δD-H 2 O values indicate meteoric water as the main source for both the shallow and deep reservoirs. Carbon dioxide, which is characterized by δ 13 C-CO 2 values ranging from −4.7 to +1.0‰ V-PDB, is mostly produced by thermo-metamorphic decarbonation involving Mesozoic rock formations, masking possible CO 2 contribution from mantle degassing. The relatively low R/R a values (0.07–1.04) indicate dominant crustal He, with a minor mantle He contribution. The CO 2 / 3 He ratios, up to 6 &#215; 10 12 , support a dominant crustal source for these two gases. The δ 34 S-H 2 S values (from +9.3 to +11.3‰ V-CDT) suggests that H 2 S is mainly related to thermogenic reduction of Triassic anhydrites. The δ 13 C-CH 4 and δD-CH 4 values (from −33.4 to −24.9‰ V-PDB and from −168 to −140‰ V-SMOW, respectively) and the relatively low C 1 /C 2+ ratios (&lt;100) are indicative of a prevailing CH 4 production through thermogenic degradation of organic matter. The low N 2 /Ar and high N 2 /He ratios, as well as the 40 Ar/ 36 Ar ratios (&lt;305) close to atmospheric ratio, suggest that both N 2 and Ar mostly derive from air. Notwithstanding, the positive δ 15 N-N 2 values (from +0.91 to +3.7‰ NBS air) point to a significant extra-atmospheric N 2 contribution. Gas geothermometry in the CH 4 -CO 2 -H 2 and H 2 S-CO 2 -H 2 systems indicate equilibrium temperatures &lt;200 &#176;C, i.e. lower than those measured in deep geothermal wells (∼300 &#176;C), due to either an incomplete attainment of the chemical equilibria or secondary processes (dilution and/or scrubbing) affecting the chemistry of the uprising fluids. Although the highly saline Na-Cl fluids discharged from the explorative geothermal wells in the study area support the occurrence of a well-developed hydrothermal reservoir suitable for direct exploitation, the chemistry of the fluid discharges highlights that the uprising hydrothermal fluids are efficiently cooled and diluted by the meteoric water recharge from the nearby Apennine sedimentary belt. This explains the different chemical and isotopic features shown by the fluids from the eastern and western sectors of SVD, respectively, the latter being influenced by this process at a lesser extent. Direct uses may be considered a valid alternative for the exploitation of this resource. [ABSTRACT FROM AUTHOR]
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  Data: &lt;i&gt;Copyright of Applied Geochemistry is the property of Pergamon Press - An Imprint of Elsevier Science and its content may not be copied or emailed to multiple sites without the copyright holder&#39;s express written permission. Additionally, content may not be used with any artificial intelligence tools or machine learning technologies. However, users may print, download, or email articles for individual use. This abstract may be abridged. No warranty is given about the accuracy of the copy. Users should refer to the original published version of the material for the full abstract.&lt;/i&gt; (Copyright applies to all Abstracts.)
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